Representation Learning for Natural Language Processing

This open access book provides an overview of the recent advances in representation learning theory, algorithms and applications for natural language processing (NLP). It is divided into three parts. Part I presents the representation learning techniques for multiple language entries, including word...

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Bibliographic Details
Main Authors: Liu, Zhiyuan (Author), Lin, Yankai (Author), Sun, Maosong (Author)
Corporate Author: SpringerLink (Online service)
Format: Electronic eBook
Language:English
Published: Singapore : Springer Nature Singapore : Imprint: Springer, 2020.
Edition:1st ed. 2020.
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Online Access:Link to Metadata
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245 1 0 |a Representation Learning for Natural Language Processing  |h [electronic resource] /  |c by Zhiyuan Liu, Yankai Lin, Maosong Sun. 
250 |a 1st ed. 2020. 
264 1 |a Singapore :  |b Springer Nature Singapore :  |b Imprint: Springer,  |c 2020. 
300 |a XXIV, 334 p. 126 illus., 99 illus. in color.  |b online resource. 
336 |a text  |b txt  |2 rdacontent 
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505 0 |a 1. Representation Learning and NLP -- 2. Word Representation -- 3. Compositional Semantics -- 4. Sentence Representation -- 5. Document Representation -- 6. Sememe Knowledge Representation -- 7. World Knowledge Representation -- 8. Network Representation -- 9. Cross-Modal Representation -- 10. Resources -- 11. Outlook. 
506 0 |a Open Access 
520 |a This open access book provides an overview of the recent advances in representation learning theory, algorithms and applications for natural language processing (NLP). It is divided into three parts. Part I presents the representation learning techniques for multiple language entries, including words, phrases, sentences and documents. Part II then introduces the representation techniques for those objects that are closely related to NLP, including entity-based world knowledge, sememe-based linguistic knowledge, networks, and cross-modal entries. Lastly, Part III provides open resource tools for representation learning techniques, and discusses the remaining challenges and future research directions. The theories and algorithms of representation learning presented can also benefit other related domains such as machine learning, social network analysis, semantic Web, information retrieval, data mining and computational biology. This book is intended for advanced undergraduate and graduate students, post-doctoral fellows, researchers, lecturers, and industrial engineers, as well as anyone interested in representation learning and natural language processing. 
650 0 |a Natural language processing (Computer science). 
650 0 |a Computational linguistics. 
650 0 |a Artificial intelligence. 
650 0 |a Data mining. 
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650 2 4 |a Artificial Intelligence. 
650 2 4 |a Data Mining and Knowledge Discovery. 
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700 1 |a Sun, Maosong.  |e author.  |4 aut  |4 http://id.loc.gov/vocabulary/relators/aut 
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